cpu.c revision 1.125 1 1.125 skrll /* $NetBSD: cpu.c,v 1.125 2019/01/03 10:26:41 skrll Exp $ */
2 1.1 matt
3 1.1 matt /*
4 1.1 matt * Copyright (c) 1995 Mark Brinicombe.
5 1.1 matt * Copyright (c) 1995 Brini.
6 1.1 matt * All rights reserved.
7 1.1 matt *
8 1.1 matt * Redistribution and use in source and binary forms, with or without
9 1.1 matt * modification, are permitted provided that the following conditions
10 1.1 matt * are met:
11 1.1 matt * 1. Redistributions of source code must retain the above copyright
12 1.1 matt * notice, this list of conditions and the following disclaimer.
13 1.1 matt * 2. Redistributions in binary form must reproduce the above copyright
14 1.1 matt * notice, this list of conditions and the following disclaimer in the
15 1.1 matt * documentation and/or other materials provided with the distribution.
16 1.1 matt * 3. All advertising materials mentioning features or use of this software
17 1.1 matt * must display the following acknowledgement:
18 1.1 matt * This product includes software developed by Brini.
19 1.1 matt * 4. The name of the company nor the name of the author may be used to
20 1.1 matt * endorse or promote products derived from this software without specific
21 1.1 matt * prior written permission.
22 1.1 matt *
23 1.1 matt * THIS SOFTWARE IS PROVIDED BY BRINI ``AS IS'' AND ANY EXPRESS OR IMPLIED
24 1.1 matt * WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES OF
25 1.1 matt * MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
26 1.1 matt * IN NO EVENT SHALL BRINI OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT,
27 1.1 matt * INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES
28 1.1 matt * (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR
29 1.1 matt * SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
30 1.1 matt * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
31 1.1 matt * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
32 1.1 matt * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
33 1.1 matt * SUCH DAMAGE.
34 1.1 matt *
35 1.1 matt * RiscBSD kernel project
36 1.1 matt *
37 1.1 matt * cpu.c
38 1.1 matt *
39 1.55 wiz * Probing and configuration for the master CPU
40 1.1 matt *
41 1.1 matt * Created : 10/10/95
42 1.1 matt */
43 1.1 matt
44 1.1 matt #include "opt_armfpe.h"
45 1.118 skrll #include "opt_cputypes.h"
46 1.51 martin #include "opt_multiprocessor.h"
47 1.1 matt
48 1.119 skrll #include <sys/cdefs.h>
49 1.125 skrll __KERNEL_RCSID(0, "$NetBSD: cpu.c,v 1.125 2019/01/03 10:26:41 skrll Exp $");
50 1.119 skrll
51 1.1 matt #include <sys/param.h>
52 1.85 matt #include <sys/conf.h>
53 1.85 matt #include <sys/cpu.h>
54 1.1 matt #include <sys/device.h>
55 1.85 matt #include <sys/kmem.h>
56 1.1 matt #include <sys/proc.h>
57 1.120 skrll #include <sys/systm.h>
58 1.85 matt
59 1.1 matt #include <uvm/uvm_extern.h>
60 1.33 thorpej
61 1.97 matt #include <arm/locore.h>
62 1.10 thorpej #include <arm/undefined.h>
63 1.10 thorpej
64 1.93 matt extern const char *cpu_arch;
65 1.1 matt
66 1.85 matt #ifdef MULTIPROCESSOR
67 1.125 skrll uint32_t cpu_mpidr[MAXCPUS] = {
68 1.125 skrll [0 ... MAXCPUS - 1] = ~0,
69 1.125 skrll };
70 1.123 skrll
71 1.123 skrll volatile u_int arm_cpu_hatched __cacheline_aligned = 0;
72 1.104 matt volatile uint32_t arm_cpu_mbox __cacheline_aligned = 0;
73 1.104 matt uint32_t arm_cpu_marker[2] __cacheline_aligned = { 0, 0 };
74 1.104 matt u_int arm_cpu_max = 1;
75 1.85 matt #endif
76 1.85 matt
77 1.1 matt /* Prototypes */
78 1.104 matt void identify_arm_cpu(device_t, struct cpu_info *);
79 1.104 matt void identify_cortex_caches(device_t);
80 1.104 matt void identify_features(device_t);
81 1.1 matt
82 1.1 matt /*
83 1.25 bjh21 * Identify the master (boot) CPU
84 1.1 matt */
85 1.122 skrll
86 1.1 matt void
87 1.85 matt cpu_attach(device_t dv, cpuid_t id)
88 1.1 matt {
89 1.86 matt const char * const xname = device_xname(dv);
90 1.125 skrll const int unit = device_unit(dv);
91 1.85 matt struct cpu_info *ci;
92 1.85 matt
93 1.125 skrll if (unit == 0) {
94 1.85 matt ci = curcpu();
95 1.27 reinoud
96 1.123 skrll /* Read SCTLR from cpu */
97 1.123 skrll ci->ci_ctrl = cpu_control(0, 0);
98 1.123 skrll
99 1.85 matt /* Get the CPU ID from coprocessor 15 */
100 1.85 matt
101 1.125 skrll ci->ci_cpuid = id;
102 1.112 christos ci->ci_arm_cpuid = cpu_idnum();
103 1.85 matt ci->ci_arm_cputype = ci->ci_arm_cpuid & CPU_ID_CPU_MASK;
104 1.85 matt ci->ci_arm_cpurev = ci->ci_arm_cpuid & CPU_ID_REVISION_MASK;
105 1.125 skrll #ifdef MULTIPROCESSOR
106 1.125 skrll ci->ci_mpidr = armreg_mpidr_read();
107 1.125 skrll #endif
108 1.85 matt } else {
109 1.85 matt #ifdef MULTIPROCESSOR
110 1.125 skrll KASSERT(cpu_info[unit] == NULL);
111 1.85 matt ci = kmem_zalloc(sizeof(*ci), KM_SLEEP);
112 1.85 matt ci->ci_cpl = IPL_HIGH;
113 1.85 matt ci->ci_cpuid = id;
114 1.125 skrll ci->ci_mpidr = armreg_mpidr_read();
115 1.125 skrll if (ci->ci_mpidr & MPIDR_MT) {
116 1.125 skrll ci->ci_smt_id = ci->ci_mpidr & MPIDR_AFF0;
117 1.125 skrll ci->ci_core_id = ci->ci_mpidr & MPIDR_AFF1;
118 1.125 skrll ci->ci_package_id = ci->ci_mpidr & MPIDR_AFF2;
119 1.104 matt } else {
120 1.125 skrll ci->ci_core_id = ci->ci_mpidr & MPIDR_AFF0;
121 1.125 skrll ci->ci_package_id = ci->ci_mpidr & MPIDR_AFF1;
122 1.104 matt }
123 1.85 matt ci->ci_data.cpu_cc_freq = cpu_info_store.ci_data.cpu_cc_freq;
124 1.125 skrll
125 1.125 skrll ci->ci_arm_cpuid = cpu_idnum();
126 1.125 skrll ci->ci_arm_cputype = ci->ci_arm_cpuid & CPU_ID_CPU_MASK;
127 1.125 skrll ci->ci_arm_cpurev = ci->ci_arm_cpuid & CPU_ID_REVISION_MASK;
128 1.125 skrll
129 1.104 matt ci->ci_undefsave[2] = cpu_info_store.ci_undefsave[2];
130 1.125 skrll
131 1.125 skrll cpu_info[unit] = ci;
132 1.125 skrll if ((arm_cpu_hatched & __BIT(unit)) == 0) {
133 1.85 matt ci->ci_dev = dv;
134 1.85 matt dv->dv_private = ci;
135 1.85 matt aprint_naive(": disabled\n");
136 1.85 matt aprint_normal(": disabled (unresponsive)\n");
137 1.85 matt return;
138 1.85 matt }
139 1.85 matt #else
140 1.85 matt aprint_naive(": disabled\n");
141 1.85 matt aprint_normal(": disabled (uniprocessor kernel)\n");
142 1.85 matt return;
143 1.85 matt #endif
144 1.85 matt }
145 1.23 bjh21
146 1.85 matt ci->ci_dev = dv;
147 1.85 matt dv->dv_private = ci;
148 1.1 matt
149 1.85 matt evcnt_attach_dynamic(&ci->ci_arm700bugcount, EVCNT_TYPE_MISC,
150 1.86 matt NULL, xname, "arm700swibug");
151 1.86 matt
152 1.86 matt evcnt_attach_dynamic_nozero(&ci->ci_abt_evs[FAULT_WRTBUF_0], EVCNT_TYPE_TRAP,
153 1.86 matt NULL, xname, "vector abort");
154 1.86 matt evcnt_attach_dynamic_nozero(&ci->ci_abt_evs[FAULT_WRTBUF_1], EVCNT_TYPE_TRAP,
155 1.86 matt NULL, xname, "terminal abort");
156 1.86 matt evcnt_attach_dynamic_nozero(&ci->ci_abt_evs[FAULT_BUSERR_0], EVCNT_TYPE_TRAP,
157 1.86 matt NULL, xname, "external linefetch abort (S)");
158 1.86 matt evcnt_attach_dynamic_nozero(&ci->ci_abt_evs[FAULT_BUSERR_1], EVCNT_TYPE_TRAP,
159 1.86 matt NULL, xname, "external linefetch abort (P)");
160 1.86 matt evcnt_attach_dynamic_nozero(&ci->ci_abt_evs[FAULT_BUSERR_2], EVCNT_TYPE_TRAP,
161 1.86 matt NULL, xname, "external non-linefetch abort (S)");
162 1.86 matt evcnt_attach_dynamic_nozero(&ci->ci_abt_evs[FAULT_BUSERR_3], EVCNT_TYPE_TRAP,
163 1.86 matt NULL, xname, "external non-linefetch abort (P)");
164 1.86 matt evcnt_attach_dynamic_nozero(&ci->ci_abt_evs[FAULT_BUSTRNL1], EVCNT_TYPE_TRAP,
165 1.86 matt NULL, xname, "external translation abort (L1)");
166 1.86 matt evcnt_attach_dynamic_nozero(&ci->ci_abt_evs[FAULT_BUSTRNL2], EVCNT_TYPE_TRAP,
167 1.86 matt NULL, xname, "external translation abort (L2)");
168 1.86 matt evcnt_attach_dynamic_nozero(&ci->ci_abt_evs[FAULT_ALIGN_0], EVCNT_TYPE_TRAP,
169 1.86 matt NULL, xname, "alignment abort (0)");
170 1.86 matt evcnt_attach_dynamic_nozero(&ci->ci_abt_evs[FAULT_ALIGN_1], EVCNT_TYPE_TRAP,
171 1.86 matt NULL, xname, "alignment abort (1)");
172 1.86 matt evcnt_attach_dynamic_nozero(&ci->ci_abt_evs[FAULT_TRANS_S], EVCNT_TYPE_TRAP,
173 1.86 matt NULL, xname, "translation abort (S)");
174 1.86 matt evcnt_attach_dynamic_nozero(&ci->ci_abt_evs[FAULT_TRANS_P], EVCNT_TYPE_TRAP,
175 1.86 matt NULL, xname, "translation abort (P)");
176 1.86 matt evcnt_attach_dynamic_nozero(&ci->ci_abt_evs[FAULT_DOMAIN_S], EVCNT_TYPE_TRAP,
177 1.86 matt NULL, xname, "domain abort (S)");
178 1.86 matt evcnt_attach_dynamic_nozero(&ci->ci_abt_evs[FAULT_DOMAIN_P], EVCNT_TYPE_TRAP,
179 1.86 matt NULL, xname, "domain abort (P)");
180 1.86 matt evcnt_attach_dynamic_nozero(&ci->ci_abt_evs[FAULT_PERM_S], EVCNT_TYPE_TRAP,
181 1.86 matt NULL, xname, "permission abort (S)");
182 1.86 matt evcnt_attach_dynamic_nozero(&ci->ci_abt_evs[FAULT_PERM_P], EVCNT_TYPE_TRAP,
183 1.86 matt NULL, xname, "permission abort (P)");
184 1.104 matt evcnt_attach_dynamic_nozero(&ci->ci_und_ev, EVCNT_TYPE_TRAP,
185 1.104 matt NULL, xname, "undefined insn traps");
186 1.104 matt evcnt_attach_dynamic_nozero(&ci->ci_und_cp15_ev, EVCNT_TYPE_TRAP,
187 1.104 matt NULL, xname, "undefined cp15 insn traps");
188 1.1 matt
189 1.85 matt #ifdef MULTIPROCESSOR
190 1.85 matt /*
191 1.85 matt * and we are done if this is a secondary processor.
192 1.85 matt */
193 1.125 skrll if (unit != 0) {
194 1.104 matt #if 1
195 1.104 matt aprint_naive("\n");
196 1.104 matt aprint_normal("\n");
197 1.104 matt #else
198 1.103 christos aprint_naive(": %s\n", cpu_getmodel());
199 1.103 christos aprint_normal(": %s\n", cpu_getmodel());
200 1.104 matt #endif
201 1.85 matt mi_cpu_attach(ci);
202 1.104 matt #ifdef ARM_MMU_EXTENDED
203 1.104 matt pmap_tlb_info_attach(&pmap_tlb0_info, ci);
204 1.104 matt #endif
205 1.85 matt return;
206 1.85 matt }
207 1.85 matt #endif
208 1.1 matt
209 1.85 matt identify_arm_cpu(dv, ci);
210 1.1 matt
211 1.85 matt #ifdef CPU_STRONGARM
212 1.85 matt if (ci->ci_arm_cputype == CPU_ID_SA110 &&
213 1.85 matt ci->ci_arm_cpurev < 3) {
214 1.85 matt aprint_normal_dev(dv, "SA-110 with bugged STM^ instruction\n");
215 1.1 matt }
216 1.85 matt #endif
217 1.1 matt
218 1.1 matt #ifdef CPU_ARM8
219 1.85 matt if ((ci->ci_arm_cpuid & CPU_ID_CPU_MASK) == CPU_ID_ARM810) {
220 1.1 matt int clock = arm8_clock_config(0, 0);
221 1.1 matt char *fclk;
222 1.85 matt aprint_normal_dev(dv, "ARM810 cp15=%02x", clock);
223 1.49 thorpej aprint_normal(" clock:%s", (clock & 1) ? " dynamic" : "");
224 1.49 thorpej aprint_normal("%s", (clock & 2) ? " sync" : "");
225 1.1 matt switch ((clock >> 2) & 3) {
226 1.15 bjh21 case 0:
227 1.1 matt fclk = "bus clock";
228 1.1 matt break;
229 1.15 bjh21 case 1:
230 1.1 matt fclk = "ref clock";
231 1.1 matt break;
232 1.15 bjh21 case 3:
233 1.1 matt fclk = "pll";
234 1.1 matt break;
235 1.15 bjh21 default:
236 1.1 matt fclk = "illegal";
237 1.1 matt break;
238 1.1 matt }
239 1.49 thorpej aprint_normal(" fclk source=%s\n", fclk);
240 1.1 matt }
241 1.1 matt #endif
242 1.1 matt
243 1.104 matt vfp_attach(ci); /* XXX SMP */
244 1.1 matt }
245 1.1 matt
246 1.19 bjh21 enum cpu_class {
247 1.19 bjh21 CPU_CLASS_NONE,
248 1.19 bjh21 CPU_CLASS_ARM2,
249 1.19 bjh21 CPU_CLASS_ARM2AS,
250 1.19 bjh21 CPU_CLASS_ARM3,
251 1.19 bjh21 CPU_CLASS_ARM6,
252 1.19 bjh21 CPU_CLASS_ARM7,
253 1.19 bjh21 CPU_CLASS_ARM7TDMI,
254 1.19 bjh21 CPU_CLASS_ARM8,
255 1.19 bjh21 CPU_CLASS_ARM9TDMI,
256 1.19 bjh21 CPU_CLASS_ARM9ES,
257 1.64 christos CPU_CLASS_ARM9EJS,
258 1.53 rearnsha CPU_CLASS_ARM10E,
259 1.57 rearnsha CPU_CLASS_ARM10EJ,
260 1.19 bjh21 CPU_CLASS_SA1,
261 1.58 rearnsha CPU_CLASS_XSCALE,
262 1.70 matt CPU_CLASS_ARM11J,
263 1.70 matt CPU_CLASS_ARMV4,
264 1.74 matt CPU_CLASS_CORTEX,
265 1.94 rkujawa CPU_CLASS_PJ4B,
266 1.19 bjh21 };
267 1.19 bjh21
268 1.42 bjh21 static const char * const generic_steppings[16] = {
269 1.14 bjh21 "rev 0", "rev 1", "rev 2", "rev 3",
270 1.14 bjh21 "rev 4", "rev 5", "rev 6", "rev 7",
271 1.14 bjh21 "rev 8", "rev 9", "rev 10", "rev 11",
272 1.14 bjh21 "rev 12", "rev 13", "rev 14", "rev 15",
273 1.14 bjh21 };
274 1.14 bjh21
275 1.68 matt static const char * const pN_steppings[16] = {
276 1.68 matt "*p0", "*p1", "*p2", "*p3", "*p4", "*p5", "*p6", "*p7",
277 1.68 matt "*p8", "*p9", "*p10", "*p11", "*p12", "*p13", "*p14", "*p15",
278 1.68 matt };
279 1.68 matt
280 1.42 bjh21 static const char * const sa110_steppings[16] = {
281 1.14 bjh21 "rev 0", "step J", "step K", "step S",
282 1.14 bjh21 "step T", "rev 5", "rev 6", "rev 7",
283 1.14 bjh21 "rev 8", "rev 9", "rev 10", "rev 11",
284 1.14 bjh21 "rev 12", "rev 13", "rev 14", "rev 15",
285 1.14 bjh21 };
286 1.14 bjh21
287 1.42 bjh21 static const char * const sa1100_steppings[16] = {
288 1.14 bjh21 "rev 0", "step B", "step C", "rev 3",
289 1.14 bjh21 "rev 4", "rev 5", "rev 6", "rev 7",
290 1.14 bjh21 "step D", "step E", "rev 10" "step G",
291 1.14 bjh21 "rev 12", "rev 13", "rev 14", "rev 15",
292 1.14 bjh21 };
293 1.14 bjh21
294 1.42 bjh21 static const char * const sa1110_steppings[16] = {
295 1.14 bjh21 "step A-0", "rev 1", "rev 2", "rev 3",
296 1.14 bjh21 "step B-0", "step B-1", "step B-2", "step B-3",
297 1.14 bjh21 "step B-4", "step B-5", "rev 10", "rev 11",
298 1.14 bjh21 "rev 12", "rev 13", "rev 14", "rev 15",
299 1.13 thorpej };
300 1.13 thorpej
301 1.42 bjh21 static const char * const ixp12x0_steppings[16] = {
302 1.37 ichiro "(IXP1200 step A)", "(IXP1200 step B)",
303 1.37 ichiro "rev 2", "(IXP1200 step C)",
304 1.37 ichiro "(IXP1200 step D)", "(IXP1240/1250 step A)",
305 1.37 ichiro "(IXP1240 step B)", "(IXP1250 step B)",
306 1.36 thorpej "rev 8", "rev 9", "rev 10", "rev 11",
307 1.36 thorpej "rev 12", "rev 13", "rev 14", "rev 15",
308 1.36 thorpej };
309 1.36 thorpej
310 1.42 bjh21 static const char * const xscale_steppings[16] = {
311 1.14 bjh21 "step A-0", "step A-1", "step B-0", "step C-0",
312 1.40 briggs "step D-0", "rev 5", "rev 6", "rev 7",
313 1.40 briggs "rev 8", "rev 9", "rev 10", "rev 11",
314 1.40 briggs "rev 12", "rev 13", "rev 14", "rev 15",
315 1.40 briggs };
316 1.40 briggs
317 1.42 bjh21 static const char * const i80321_steppings[16] = {
318 1.40 briggs "step A-0", "step B-0", "rev 2", "rev 3",
319 1.14 bjh21 "rev 4", "rev 5", "rev 6", "rev 7",
320 1.14 bjh21 "rev 8", "rev 9", "rev 10", "rev 11",
321 1.14 bjh21 "rev 12", "rev 13", "rev 14", "rev 15",
322 1.13 thorpej };
323 1.13 thorpej
324 1.60 nonaka static const char * const i80219_steppings[16] = {
325 1.60 nonaka "step A-0", "rev 1", "rev 2", "rev 3",
326 1.60 nonaka "rev 4", "rev 5", "rev 6", "rev 7",
327 1.60 nonaka "rev 8", "rev 9", "rev 10", "rev 11",
328 1.60 nonaka "rev 12", "rev 13", "rev 14", "rev 15",
329 1.60 nonaka };
330 1.60 nonaka
331 1.56 bsh /* Steppings for PXA2[15]0 */
332 1.42 bjh21 static const char * const pxa2x0_steppings[16] = {
333 1.35 thorpej "step A-0", "step A-1", "step B-0", "step B-1",
334 1.48 rjs "step B-2", "step C-0", "rev 6", "rev 7",
335 1.35 thorpej "rev 8", "rev 9", "rev 10", "rev 11",
336 1.35 thorpej "rev 12", "rev 13", "rev 14", "rev 15",
337 1.35 thorpej };
338 1.35 thorpej
339 1.56 bsh /* Steppings for PXA255/26x.
340 1.122 skrll * rev 5: PXA26x B0, rev 6: PXA255 A0
341 1.56 bsh */
342 1.56 bsh static const char * const pxa255_steppings[16] = {
343 1.56 bsh "rev 0", "rev 1", "rev 2", "step A-0",
344 1.56 bsh "rev 4", "step B-0", "step A-0", "rev 7",
345 1.56 bsh "rev 8", "rev 9", "rev 10", "rev 11",
346 1.56 bsh "rev 12", "rev 13", "rev 14", "rev 15",
347 1.56 bsh };
348 1.56 bsh
349 1.59 bsh /* Stepping for PXA27x */
350 1.59 bsh static const char * const pxa27x_steppings[16] = {
351 1.59 bsh "step A-0", "step A-1", "step B-0", "step B-1",
352 1.59 bsh "step C-0", "rev 5", "rev 6", "rev 7",
353 1.59 bsh "rev 8", "rev 9", "rev 10", "rev 11",
354 1.59 bsh "rev 12", "rev 13", "rev 14", "rev 15",
355 1.59 bsh };
356 1.59 bsh
357 1.50 ichiro static const char * const ixp425_steppings[16] = {
358 1.50 ichiro "step 0", "rev 1", "rev 2", "rev 3",
359 1.50 ichiro "rev 4", "rev 5", "rev 6", "rev 7",
360 1.50 ichiro "rev 8", "rev 9", "rev 10", "rev 11",
361 1.50 ichiro "rev 12", "rev 13", "rev 14", "rev 15",
362 1.50 ichiro };
363 1.50 ichiro
364 1.1 matt struct cpuidtab {
365 1.88 skrll uint32_t cpuid;
366 1.1 matt enum cpu_class cpu_class;
367 1.72 mrg const char *cpu_classname;
368 1.42 bjh21 const char * const *cpu_steppings;
369 1.93 matt char cpu_arch[8];
370 1.1 matt };
371 1.1 matt
372 1.1 matt const struct cpuidtab cpuids[] = {
373 1.13 thorpej { CPU_ID_ARM2, CPU_CLASS_ARM2, "ARM2",
374 1.93 matt generic_steppings, "2" },
375 1.13 thorpej { CPU_ID_ARM250, CPU_CLASS_ARM2AS, "ARM250",
376 1.93 matt generic_steppings, "2" },
377 1.13 thorpej
378 1.13 thorpej { CPU_ID_ARM3, CPU_CLASS_ARM3, "ARM3",
379 1.93 matt generic_steppings, "2A" },
380 1.13 thorpej
381 1.13 thorpej { CPU_ID_ARM600, CPU_CLASS_ARM6, "ARM600",
382 1.93 matt generic_steppings, "3" },
383 1.13 thorpej { CPU_ID_ARM610, CPU_CLASS_ARM6, "ARM610",
384 1.93 matt generic_steppings, "3" },
385 1.13 thorpej { CPU_ID_ARM620, CPU_CLASS_ARM6, "ARM620",
386 1.93 matt generic_steppings, "3" },
387 1.13 thorpej
388 1.13 thorpej { CPU_ID_ARM700, CPU_CLASS_ARM7, "ARM700",
389 1.93 matt generic_steppings, "3" },
390 1.13 thorpej { CPU_ID_ARM710, CPU_CLASS_ARM7, "ARM710",
391 1.93 matt generic_steppings, "3" },
392 1.13 thorpej { CPU_ID_ARM7500, CPU_CLASS_ARM7, "ARM7500",
393 1.93 matt generic_steppings, "3" },
394 1.13 thorpej { CPU_ID_ARM710A, CPU_CLASS_ARM7, "ARM710a",
395 1.93 matt generic_steppings, "3" },
396 1.13 thorpej { CPU_ID_ARM7500FE, CPU_CLASS_ARM7, "ARM7500FE",
397 1.93 matt generic_steppings, "3" },
398 1.93 matt
399 1.93 matt { CPU_ID_ARM810, CPU_CLASS_ARM8, "ARM810",
400 1.93 matt generic_steppings, "4" },
401 1.93 matt
402 1.93 matt { CPU_ID_SA110, CPU_CLASS_SA1, "SA-110",
403 1.93 matt sa110_steppings, "4" },
404 1.93 matt { CPU_ID_SA1100, CPU_CLASS_SA1, "SA-1100",
405 1.93 matt sa1100_steppings, "4" },
406 1.93 matt { CPU_ID_SA1110, CPU_CLASS_SA1, "SA-1110",
407 1.93 matt sa1110_steppings, "4" },
408 1.93 matt
409 1.93 matt { CPU_ID_FA526, CPU_CLASS_ARMV4, "FA526",
410 1.93 matt generic_steppings, "4" },
411 1.93 matt
412 1.93 matt { CPU_ID_IXP1200, CPU_CLASS_SA1, "IXP1200",
413 1.93 matt ixp12x0_steppings, "4" },
414 1.93 matt
415 1.13 thorpej { CPU_ID_ARM710T, CPU_CLASS_ARM7TDMI, "ARM710T",
416 1.93 matt generic_steppings, "4T" },
417 1.13 thorpej { CPU_ID_ARM720T, CPU_CLASS_ARM7TDMI, "ARM720T",
418 1.93 matt generic_steppings, "4T" },
419 1.13 thorpej { CPU_ID_ARM740T8K, CPU_CLASS_ARM7TDMI, "ARM740T (8 KB cache)",
420 1.93 matt generic_steppings, "4T" },
421 1.13 thorpej { CPU_ID_ARM740T4K, CPU_CLASS_ARM7TDMI, "ARM740T (4 KB cache)",
422 1.93 matt generic_steppings, "4T" },
423 1.13 thorpej { CPU_ID_ARM920T, CPU_CLASS_ARM9TDMI, "ARM920T",
424 1.93 matt generic_steppings, "4T" },
425 1.13 thorpej { CPU_ID_ARM922T, CPU_CLASS_ARM9TDMI, "ARM922T",
426 1.93 matt generic_steppings, "4T" },
427 1.13 thorpej { CPU_ID_ARM940T, CPU_CLASS_ARM9TDMI, "ARM940T",
428 1.93 matt generic_steppings, "4T" },
429 1.93 matt { CPU_ID_TI925T, CPU_CLASS_ARM9TDMI, "TI ARM925T",
430 1.93 matt generic_steppings, "4T" },
431 1.93 matt
432 1.13 thorpej { CPU_ID_ARM946ES, CPU_CLASS_ARM9ES, "ARM946E-S",
433 1.93 matt generic_steppings, "5TE" },
434 1.13 thorpej { CPU_ID_ARM966ES, CPU_CLASS_ARM9ES, "ARM966E-S",
435 1.93 matt generic_steppings, "5TE" },
436 1.13 thorpej { CPU_ID_ARM966ESR1, CPU_CLASS_ARM9ES, "ARM966E-S",
437 1.93 matt generic_steppings, "5TE" },
438 1.77 kiyohara { CPU_ID_MV88SV131, CPU_CLASS_ARM9ES, "Sheeva 88SV131",
439 1.93 matt generic_steppings, "5TE" },
440 1.77 kiyohara { CPU_ID_MV88FR571_VD, CPU_CLASS_ARM9ES, "Sheeva 88FR571-vd",
441 1.93 matt generic_steppings, "5TE" },
442 1.13 thorpej
443 1.32 thorpej { CPU_ID_80200, CPU_CLASS_XSCALE, "i80200",
444 1.93 matt xscale_steppings, "5TE" },
445 1.32 thorpej
446 1.38 thorpej { CPU_ID_80321_400, CPU_CLASS_XSCALE, "i80321 400MHz",
447 1.93 matt i80321_steppings, "5TE" },
448 1.38 thorpej { CPU_ID_80321_600, CPU_CLASS_XSCALE, "i80321 600MHz",
449 1.93 matt i80321_steppings, "5TE" },
450 1.40 briggs { CPU_ID_80321_400_B0, CPU_CLASS_XSCALE, "i80321 400MHz",
451 1.93 matt i80321_steppings, "5TE" },
452 1.40 briggs { CPU_ID_80321_600_B0, CPU_CLASS_XSCALE, "i80321 600MHz",
453 1.93 matt i80321_steppings, "5TE" },
454 1.13 thorpej
455 1.60 nonaka { CPU_ID_80219_400, CPU_CLASS_XSCALE, "i80219 400MHz",
456 1.93 matt i80219_steppings, "5TE" },
457 1.60 nonaka { CPU_ID_80219_600, CPU_CLASS_XSCALE, "i80219 600MHz",
458 1.93 matt i80219_steppings, "5TE" },
459 1.60 nonaka
460 1.59 bsh { CPU_ID_PXA27X, CPU_CLASS_XSCALE, "PXA27x",
461 1.93 matt pxa27x_steppings, "5TE" },
462 1.48 rjs { CPU_ID_PXA250A, CPU_CLASS_XSCALE, "PXA250",
463 1.93 matt pxa2x0_steppings, "5TE" },
464 1.48 rjs { CPU_ID_PXA210A, CPU_CLASS_XSCALE, "PXA210",
465 1.93 matt pxa2x0_steppings, "5TE" },
466 1.48 rjs { CPU_ID_PXA250B, CPU_CLASS_XSCALE, "PXA250",
467 1.93 matt pxa2x0_steppings, "5TE" },
468 1.48 rjs { CPU_ID_PXA210B, CPU_CLASS_XSCALE, "PXA210",
469 1.93 matt pxa2x0_steppings, "5TE" },
470 1.56 bsh { CPU_ID_PXA250C, CPU_CLASS_XSCALE, "PXA255/26x",
471 1.93 matt pxa255_steppings, "5TE" },
472 1.48 rjs { CPU_ID_PXA210C, CPU_CLASS_XSCALE, "PXA210",
473 1.93 matt pxa2x0_steppings, "5TE" },
474 1.35 thorpej
475 1.50 ichiro { CPU_ID_IXP425_533, CPU_CLASS_XSCALE, "IXP425 533MHz",
476 1.93 matt ixp425_steppings, "5TE" },
477 1.50 ichiro { CPU_ID_IXP425_400, CPU_CLASS_XSCALE, "IXP425 400MHz",
478 1.93 matt ixp425_steppings, "5TE" },
479 1.50 ichiro { CPU_ID_IXP425_266, CPU_CLASS_XSCALE, "IXP425 266MHz",
480 1.93 matt ixp425_steppings, "5TE" },
481 1.93 matt
482 1.93 matt { CPU_ID_ARM1020E, CPU_CLASS_ARM10E, "ARM1020E",
483 1.93 matt generic_steppings, "5TE" },
484 1.93 matt { CPU_ID_ARM1022ES, CPU_CLASS_ARM10E, "ARM1022E-S",
485 1.93 matt generic_steppings, "5TE" },
486 1.93 matt
487 1.93 matt { CPU_ID_ARM1026EJS, CPU_CLASS_ARM10EJ, "ARM1026EJ-S",
488 1.93 matt generic_steppings, "5TEJ" },
489 1.93 matt { CPU_ID_ARM926EJS, CPU_CLASS_ARM9EJS, "ARM926EJ-S",
490 1.93 matt generic_steppings, "5TEJ" },
491 1.50 ichiro
492 1.68 matt { CPU_ID_ARM1136JS, CPU_CLASS_ARM11J, "ARM1136J-S r0",
493 1.93 matt pN_steppings, "6J" },
494 1.68 matt { CPU_ID_ARM1136JSR1, CPU_CLASS_ARM11J, "ARM1136J-S r1",
495 1.93 matt pN_steppings, "6J" },
496 1.81 skrll #if 0
497 1.81 skrll /* The ARM1156T2-S only has a memory protection unit */
498 1.80 skrll { CPU_ID_ARM1156T2S, CPU_CLASS_ARM11J, "ARM1156T2-S r0",
499 1.93 matt pN_steppings, "6T2" },
500 1.81 skrll #endif
501 1.79 skrll { CPU_ID_ARM1176JZS, CPU_CLASS_ARM11J, "ARM1176JZ-S r0",
502 1.93 matt pN_steppings, "6ZK" },
503 1.74 matt
504 1.78 bsh { CPU_ID_ARM11MPCORE, CPU_CLASS_ARM11J, "ARM11 MPCore",
505 1.93 matt generic_steppings, "6K" },
506 1.78 bsh
507 1.82 matt { CPU_ID_CORTEXA5R0, CPU_CLASS_CORTEX, "Cortex-A5 r0",
508 1.93 matt pN_steppings, "7A" },
509 1.98 matt { CPU_ID_CORTEXA7R0, CPU_CLASS_CORTEX, "Cortex-A7 r0",
510 1.98 matt pN_steppings, "7A" },
511 1.74 matt { CPU_ID_CORTEXA8R1, CPU_CLASS_CORTEX, "Cortex-A8 r1",
512 1.93 matt pN_steppings, "7A" },
513 1.74 matt { CPU_ID_CORTEXA8R2, CPU_CLASS_CORTEX, "Cortex-A8 r2",
514 1.93 matt pN_steppings, "7A" },
515 1.74 matt { CPU_ID_CORTEXA8R3, CPU_CLASS_CORTEX, "Cortex-A8 r3",
516 1.93 matt pN_steppings, "7A" },
517 1.114 kiyohara { CPU_ID_CORTEXA9R1, CPU_CLASS_CORTEX, "Cortex-A9 r1",
518 1.114 kiyohara pN_steppings, "7A" },
519 1.82 matt { CPU_ID_CORTEXA9R2, CPU_CLASS_CORTEX, "Cortex-A9 r2",
520 1.93 matt pN_steppings, "7A" },
521 1.82 matt { CPU_ID_CORTEXA9R3, CPU_CLASS_CORTEX, "Cortex-A9 r3",
522 1.93 matt pN_steppings, "7A" },
523 1.82 matt { CPU_ID_CORTEXA9R4, CPU_CLASS_CORTEX, "Cortex-A9 r4",
524 1.93 matt pN_steppings, "7A" },
525 1.82 matt { CPU_ID_CORTEXA15R2, CPU_CLASS_CORTEX, "Cortex-A15 r2",
526 1.93 matt pN_steppings, "7A" },
527 1.82 matt { CPU_ID_CORTEXA15R3, CPU_CLASS_CORTEX, "Cortex-A15 r3",
528 1.93 matt pN_steppings, "7A" },
529 1.106 matt { CPU_ID_CORTEXA17R1, CPU_CLASS_CORTEX, "Cortex-A17 r1",
530 1.106 matt pN_steppings, "7A" },
531 1.116 matt { CPU_ID_CORTEXA35R0, CPU_CLASS_CORTEX, "Cortex-A35 r0",
532 1.116 matt pN_steppings, "8A" },
533 1.113 skrll { CPU_ID_CORTEXA53R0, CPU_CLASS_CORTEX, "Cortex-A53 r0",
534 1.113 skrll pN_steppings, "8A" },
535 1.113 skrll { CPU_ID_CORTEXA57R0, CPU_CLASS_CORTEX, "Cortex-A57 r0",
536 1.113 skrll pN_steppings, "8A" },
537 1.113 skrll { CPU_ID_CORTEXA57R1, CPU_CLASS_CORTEX, "Cortex-A57 r1",
538 1.113 skrll pN_steppings, "8A" },
539 1.113 skrll { CPU_ID_CORTEXA72R0, CPU_CLASS_CORTEX, "Cortex-A72 r0",
540 1.113 skrll pN_steppings, "8A" },
541 1.70 matt
542 1.94 rkujawa { CPU_ID_MV88SV581X_V6, CPU_CLASS_PJ4B, "Sheeva 88SV581x",
543 1.94 rkujawa generic_steppings },
544 1.94 rkujawa { CPU_ID_ARM_88SV581X_V6, CPU_CLASS_PJ4B, "Sheeva 88SV581x",
545 1.94 rkujawa generic_steppings },
546 1.94 rkujawa { CPU_ID_MV88SV581X_V7, CPU_CLASS_PJ4B, "Sheeva 88SV581x",
547 1.94 rkujawa generic_steppings },
548 1.94 rkujawa { CPU_ID_ARM_88SV581X_V7, CPU_CLASS_PJ4B, "Sheeva 88SV581x",
549 1.94 rkujawa generic_steppings },
550 1.94 rkujawa { CPU_ID_MV88SV584X_V6, CPU_CLASS_PJ4B, "Sheeva 88SV584x",
551 1.94 rkujawa generic_steppings },
552 1.94 rkujawa { CPU_ID_ARM_88SV584X_V6, CPU_CLASS_PJ4B, "Sheeva 88SV584x",
553 1.94 rkujawa generic_steppings },
554 1.94 rkujawa { CPU_ID_MV88SV584X_V7, CPU_CLASS_PJ4B, "Sheeva 88SV584x",
555 1.94 rkujawa generic_steppings },
556 1.94 rkujawa
557 1.94 rkujawa
558 1.93 matt { 0, CPU_CLASS_NONE, NULL, NULL, "" }
559 1.1 matt };
560 1.1 matt
561 1.1 matt struct cpu_classtab {
562 1.9 thorpej const char *class_name;
563 1.9 thorpej const char *class_option;
564 1.1 matt };
565 1.1 matt
566 1.1 matt const struct cpu_classtab cpu_classes[] = {
567 1.74 matt [CPU_CLASS_NONE] = { "unknown", NULL },
568 1.74 matt [CPU_CLASS_ARM2] = { "ARM2", "CPU_ARM2" },
569 1.74 matt [CPU_CLASS_ARM2AS] = { "ARM2as", "CPU_ARM250" },
570 1.74 matt [CPU_CLASS_ARM3] = { "ARM3", "CPU_ARM3" },
571 1.74 matt [CPU_CLASS_ARM6] = { "ARM6", "CPU_ARM6" },
572 1.74 matt [CPU_CLASS_ARM7] = { "ARM7", "CPU_ARM7" },
573 1.74 matt [CPU_CLASS_ARM7TDMI] = { "ARM7TDMI", "CPU_ARM7TDMI" },
574 1.74 matt [CPU_CLASS_ARM8] = { "ARM8", "CPU_ARM8" },
575 1.74 matt [CPU_CLASS_ARM9TDMI] = { "ARM9TDMI", NULL },
576 1.74 matt [CPU_CLASS_ARM9ES] = { "ARM9E-S", "CPU_ARM9E" },
577 1.74 matt [CPU_CLASS_ARM9EJS] = { "ARM9EJ-S", "CPU_ARM9E" },
578 1.74 matt [CPU_CLASS_ARM10E] = { "ARM10E", "CPU_ARM10" },
579 1.74 matt [CPU_CLASS_ARM10EJ] = { "ARM10EJ", "CPU_ARM10" },
580 1.74 matt [CPU_CLASS_SA1] = { "SA-1", "CPU_SA110" },
581 1.74 matt [CPU_CLASS_XSCALE] = { "XScale", "CPU_XSCALE_..." },
582 1.74 matt [CPU_CLASS_ARM11J] = { "ARM11J", "CPU_ARM11" },
583 1.74 matt [CPU_CLASS_ARMV4] = { "ARMv4", "CPU_ARMV4" },
584 1.75 matt [CPU_CLASS_CORTEX] = { "Cortex", "CPU_CORTEX" },
585 1.94 rkujawa [CPU_CLASS_PJ4B] = { "Marvell", "CPU_PJ4B" },
586 1.1 matt };
587 1.1 matt
588 1.1 matt /*
589 1.47 wiz * Report the type of the specified arm processor. This uses the generic and
590 1.55 wiz * arm specific information in the CPU structure to identify the processor.
591 1.55 wiz * The remaining fields in the CPU structure are filled in appropriately.
592 1.1 matt */
593 1.1 matt
594 1.42 bjh21 static const char * const wtnames[] = {
595 1.12 thorpej "write-through",
596 1.12 thorpej "write-back",
597 1.12 thorpej "write-back",
598 1.12 thorpej "**unknown 3**",
599 1.12 thorpej "**unknown 4**",
600 1.12 thorpej "write-back-locking", /* XXX XScale-specific? */
601 1.12 thorpej "write-back-locking-A",
602 1.12 thorpej "write-back-locking-B",
603 1.12 thorpej "**unknown 8**",
604 1.12 thorpej "**unknown 9**",
605 1.12 thorpej "**unknown 10**",
606 1.12 thorpej "**unknown 11**",
607 1.107 jmcneill "write-back",
608 1.102 matt "write-back-locking-line",
609 1.57 rearnsha "write-back-locking-C",
610 1.86 matt "write-back-locking-D",
611 1.12 thorpej };
612 1.12 thorpej
613 1.86 matt static void
614 1.86 matt print_cache_info(device_t dv, struct arm_cache_info *info, u_int level)
615 1.86 matt {
616 1.86 matt if (info->cache_unified) {
617 1.100 matt aprint_normal_dev(dv, "%dKB/%dB %d-way %s L%u %cI%cT Unified cache\n",
618 1.86 matt info->dcache_size / 1024,
619 1.86 matt info->dcache_line_size, info->dcache_ways,
620 1.100 matt wtnames[info->cache_type], level + 1,
621 1.100 matt info->dcache_type & CACHE_TYPE_PIxx ? 'P' : 'V',
622 1.100 matt info->dcache_type & CACHE_TYPE_xxPT ? 'P' : 'V');
623 1.86 matt } else {
624 1.100 matt aprint_normal_dev(dv, "%dKB/%dB %d-way L%u %cI%cT Instruction cache\n",
625 1.86 matt info->icache_size / 1024,
626 1.100 matt info->icache_line_size, info->icache_ways, level + 1,
627 1.100 matt info->icache_type & CACHE_TYPE_PIxx ? 'P' : 'V',
628 1.100 matt info->icache_type & CACHE_TYPE_xxPT ? 'P' : 'V');
629 1.100 matt aprint_normal_dev(dv, "%dKB/%dB %d-way %s L%u %cI%cT Data cache\n",
630 1.122 skrll info->dcache_size / 1024,
631 1.86 matt info->dcache_line_size, info->dcache_ways,
632 1.100 matt wtnames[info->cache_type], level + 1,
633 1.100 matt info->dcache_type & CACHE_TYPE_PIxx ? 'P' : 'V',
634 1.100 matt info->dcache_type & CACHE_TYPE_xxPT ? 'P' : 'V');
635 1.86 matt }
636 1.86 matt }
637 1.86 matt
638 1.104 matt static enum cpu_class
639 1.104 matt identify_arm_model(uint32_t cpuid, char *buf, size_t len)
640 1.104 matt {
641 1.104 matt enum cpu_class cpu_class = CPU_CLASS_NONE;
642 1.104 matt for (const struct cpuidtab *id = cpuids; id->cpuid != 0; id++) {
643 1.104 matt if (id->cpuid == (cpuid & CPU_ID_CPU_MASK)) {
644 1.104 matt const char *steppingstr =
645 1.104 matt id->cpu_steppings[cpuid & CPU_ID_REVISION_MASK];
646 1.104 matt cpu_arch = id->cpu_arch;
647 1.104 matt cpu_class = id->cpu_class;
648 1.104 matt snprintf(buf, len, "%s%s%s (%s V%s core)",
649 1.104 matt id->cpu_classname,
650 1.104 matt steppingstr[0] == '*' ? "" : " ",
651 1.104 matt &steppingstr[steppingstr[0] == '*'],
652 1.104 matt cpu_classes[cpu_class].class_name,
653 1.104 matt cpu_arch);
654 1.104 matt return cpu_class;
655 1.104 matt }
656 1.104 matt }
657 1.104 matt
658 1.104 matt snprintf(buf, len, "unknown CPU (ID = 0x%x)", cpuid);
659 1.104 matt return cpu_class;
660 1.104 matt }
661 1.104 matt
662 1.1 matt void
663 1.84 matt identify_arm_cpu(device_t dv, struct cpu_info *ci)
664 1.1 matt {
665 1.104 matt const uint32_t arm_cpuid = ci->ci_arm_cpuid;
666 1.85 matt const char * const xname = device_xname(dv);
667 1.104 matt char model[128];
668 1.1 matt
669 1.104 matt if (arm_cpuid == 0) {
670 1.49 thorpej aprint_error("Processor failed probe - no CPU ID\n");
671 1.1 matt return;
672 1.1 matt }
673 1.1 matt
674 1.104 matt const enum cpu_class cpu_class = identify_arm_model(arm_cpuid,
675 1.104 matt model, sizeof(model));
676 1.104 matt if (ci->ci_cpuid == 0) {
677 1.104 matt cpu_setmodel("%s", model);
678 1.104 matt }
679 1.1 matt
680 1.85 matt if (ci->ci_data.cpu_cc_freq != 0) {
681 1.105 reinoud char freqbuf[10];
682 1.85 matt humanize_number(freqbuf, sizeof(freqbuf), ci->ci_data.cpu_cc_freq,
683 1.85 matt "Hz", 1000);
684 1.85 matt
685 1.104 matt aprint_naive(": %s %s\n", freqbuf, model);
686 1.104 matt aprint_normal(": %s %s\n", freqbuf, model);
687 1.85 matt } else {
688 1.104 matt aprint_naive(": %s\n", model);
689 1.104 matt aprint_normal(": %s\n", model);
690 1.85 matt }
691 1.29 bjh21
692 1.85 matt aprint_normal("%s:", xname);
693 1.29 bjh21
694 1.19 bjh21 switch (cpu_class) {
695 1.1 matt case CPU_CLASS_ARM6:
696 1.1 matt case CPU_CLASS_ARM7:
697 1.3 chris case CPU_CLASS_ARM7TDMI:
698 1.1 matt case CPU_CLASS_ARM8:
699 1.18 bjh21 if ((ci->ci_ctrl & CPU_CONTROL_IDC_ENABLE) == 0)
700 1.49 thorpej aprint_normal(" IDC disabled");
701 1.1 matt else
702 1.49 thorpej aprint_normal(" IDC enabled");
703 1.1 matt break;
704 1.6 rearnsha case CPU_CLASS_ARM9TDMI:
705 1.64 christos case CPU_CLASS_ARM9ES:
706 1.64 christos case CPU_CLASS_ARM9EJS:
707 1.53 rearnsha case CPU_CLASS_ARM10E:
708 1.57 rearnsha case CPU_CLASS_ARM10EJ:
709 1.1 matt case CPU_CLASS_SA1:
710 1.4 matt case CPU_CLASS_XSCALE:
711 1.58 rearnsha case CPU_CLASS_ARM11J:
712 1.71 matt case CPU_CLASS_ARMV4:
713 1.74 matt case CPU_CLASS_CORTEX:
714 1.94 rkujawa case CPU_CLASS_PJ4B:
715 1.18 bjh21 if ((ci->ci_ctrl & CPU_CONTROL_DC_ENABLE) == 0)
716 1.49 thorpej aprint_normal(" DC disabled");
717 1.1 matt else
718 1.49 thorpej aprint_normal(" DC enabled");
719 1.18 bjh21 if ((ci->ci_ctrl & CPU_CONTROL_IC_ENABLE) == 0)
720 1.49 thorpej aprint_normal(" IC disabled");
721 1.1 matt else
722 1.49 thorpej aprint_normal(" IC enabled");
723 1.1 matt break;
724 1.19 bjh21 default:
725 1.19 bjh21 break;
726 1.1 matt }
727 1.18 bjh21 if ((ci->ci_ctrl & CPU_CONTROL_WBUF_ENABLE) == 0)
728 1.49 thorpej aprint_normal(" WB disabled");
729 1.1 matt else
730 1.49 thorpej aprint_normal(" WB enabled");
731 1.1 matt
732 1.18 bjh21 if (ci->ci_ctrl & CPU_CONTROL_LABT_ENABLE)
733 1.49 thorpej aprint_normal(" LABT");
734 1.1 matt else
735 1.49 thorpej aprint_normal(" EABT");
736 1.1 matt
737 1.18 bjh21 if (ci->ci_ctrl & CPU_CONTROL_BPRD_ENABLE)
738 1.49 thorpej aprint_normal(" branch prediction enabled");
739 1.1 matt
740 1.49 thorpej aprint_normal("\n");
741 1.1 matt
742 1.104 matt if (CPU_ID_CORTEX_P(arm_cpuid) || CPU_ID_ARM11_P(arm_cpuid) || CPU_ID_MV88SV58XX_P(arm_cpuid)) {
743 1.87 matt identify_features(dv);
744 1.87 matt }
745 1.92 matt
746 1.12 thorpej /* Print cache info. */
747 1.86 matt if (arm_pcache.icache_line_size != 0 || arm_pcache.dcache_line_size != 0) {
748 1.86 matt print_cache_info(dv, &arm_pcache, 0);
749 1.86 matt }
750 1.86 matt if (arm_scache.icache_line_size != 0 || arm_scache.dcache_line_size != 0) {
751 1.86 matt print_cache_info(dv, &arm_scache, 1);
752 1.12 thorpej }
753 1.12 thorpej
754 1.1 matt
755 1.19 bjh21 switch (cpu_class) {
756 1.1 matt #ifdef CPU_ARM6
757 1.1 matt case CPU_CLASS_ARM6:
758 1.1 matt #endif
759 1.1 matt #ifdef CPU_ARM7
760 1.1 matt case CPU_CLASS_ARM7:
761 1.1 matt #endif
762 1.3 chris #ifdef CPU_ARM7TDMI
763 1.3 chris case CPU_CLASS_ARM7TDMI:
764 1.122 skrll #endif
765 1.1 matt #ifdef CPU_ARM8
766 1.1 matt case CPU_CLASS_ARM8:
767 1.6 rearnsha #endif
768 1.6 rearnsha #ifdef CPU_ARM9
769 1.6 rearnsha case CPU_CLASS_ARM9TDMI:
770 1.53 rearnsha #endif
771 1.77 kiyohara #if defined(CPU_ARM9E) || defined(CPU_SHEEVA)
772 1.64 christos case CPU_CLASS_ARM9ES:
773 1.64 christos case CPU_CLASS_ARM9EJS:
774 1.64 christos #endif
775 1.53 rearnsha #ifdef CPU_ARM10
776 1.53 rearnsha case CPU_CLASS_ARM10E:
777 1.57 rearnsha case CPU_CLASS_ARM10EJ:
778 1.1 matt #endif
779 1.37 ichiro #if defined(CPU_SA110) || defined(CPU_SA1100) || \
780 1.37 ichiro defined(CPU_SA1110) || defined(CPU_IXP12X0)
781 1.1 matt case CPU_CLASS_SA1:
782 1.4 matt #endif
783 1.35 thorpej #if defined(CPU_XSCALE_80200) || defined(CPU_XSCALE_80321) || \
784 1.59 bsh defined(__CPU_XSCALE_PXA2XX) || defined(CPU_XSCALE_IXP425)
785 1.4 matt case CPU_CLASS_XSCALE:
786 1.1 matt #endif
787 1.68 matt #if defined(CPU_ARM11)
788 1.58 rearnsha case CPU_CLASS_ARM11J:
789 1.76 matt #endif
790 1.76 matt #if defined(CPU_CORTEX)
791 1.74 matt case CPU_CLASS_CORTEX:
792 1.58 rearnsha #endif
793 1.94 rkujawa #if defined(CPU_PJ4B)
794 1.94 rkujawa case CPU_CLASS_PJ4B:
795 1.94 rkujawa #endif
796 1.71 matt #if defined(CPU_FA526)
797 1.71 matt case CPU_CLASS_ARMV4:
798 1.71 matt #endif
799 1.1 matt break;
800 1.1 matt default:
801 1.85 matt if (cpu_classes[cpu_class].class_option == NULL) {
802 1.85 matt aprint_error_dev(dv, "%s does not fully support this CPU.\n",
803 1.85 matt ostype);
804 1.85 matt } else {
805 1.85 matt aprint_error_dev(dv, "This kernel does not fully support "
806 1.85 matt "this CPU.\n");
807 1.85 matt aprint_normal_dev(dv, "Recompile with \"options %s\" to "
808 1.85 matt "correct this.\n", cpu_classes[cpu_class].class_option);
809 1.1 matt }
810 1.1 matt break;
811 1.1 matt }
812 1.43 bjh21 }
813 1.1 matt
814 1.92 matt extern int cpu_instruction_set_attributes[6];
815 1.92 matt extern int cpu_memory_model_features[4];
816 1.92 matt extern int cpu_processor_features[2];
817 1.92 matt extern int cpu_simd_present;
818 1.92 matt extern int cpu_simdex_present;
819 1.92 matt
820 1.85 matt void
821 1.85 matt identify_features(device_t dv)
822 1.85 matt {
823 1.92 matt cpu_instruction_set_attributes[0] = armreg_isar0_read();
824 1.92 matt cpu_instruction_set_attributes[1] = armreg_isar1_read();
825 1.92 matt cpu_instruction_set_attributes[2] = armreg_isar2_read();
826 1.92 matt cpu_instruction_set_attributes[3] = armreg_isar3_read();
827 1.92 matt cpu_instruction_set_attributes[4] = armreg_isar4_read();
828 1.92 matt cpu_instruction_set_attributes[5] = armreg_isar5_read();
829 1.92 matt
830 1.99 matt cpu_hwdiv_present =
831 1.99 matt ((cpu_instruction_set_attributes[0] >> 24) & 0x0f) >= 2;
832 1.92 matt cpu_simd_present =
833 1.92 matt ((cpu_instruction_set_attributes[3] >> 4) & 0x0f) >= 3;
834 1.92 matt cpu_simdex_present = cpu_simd_present
835 1.92 matt && ((cpu_instruction_set_attributes[1] >> 12) & 0x0f) >= 2;
836 1.101 matt cpu_synchprim_present =
837 1.101 matt ((cpu_instruction_set_attributes[3] >> 8) & 0xf0)
838 1.101 matt | ((cpu_instruction_set_attributes[4] >> 20) & 0x0f);
839 1.92 matt
840 1.92 matt cpu_memory_model_features[0] = armreg_mmfr0_read();
841 1.92 matt cpu_memory_model_features[1] = armreg_mmfr1_read();
842 1.92 matt cpu_memory_model_features[2] = armreg_mmfr2_read();
843 1.92 matt cpu_memory_model_features[3] = armreg_mmfr3_read();
844 1.85 matt
845 1.104 matt #if 0
846 1.92 matt if (__SHIFTOUT(cpu_memory_model_features[3], __BITS(23,20))) {
847 1.87 matt /*
848 1.87 matt * Updates to the translation tables do not require a clean
849 1.92 matt * to the point of unification to ensure visibility by
850 1.92 matt * subsequent translation table walks.
851 1.87 matt */
852 1.87 matt pmap_needs_pte_sync = 0;
853 1.87 matt }
854 1.104 matt #endif
855 1.87 matt
856 1.92 matt cpu_processor_features[0] = armreg_pfr0_read();
857 1.92 matt cpu_processor_features[1] = armreg_pfr1_read();
858 1.85 matt
859 1.111 jmcneill aprint_debug_dev(dv, "sctlr: %#x\n", armreg_sctlr_read());
860 1.111 jmcneill aprint_debug_dev(dv, "actlr: %#x\n", armreg_auxctl_read());
861 1.111 jmcneill aprint_debug_dev(dv, "revidr: %#x\n", armreg_revidr_read());
862 1.108 matt #ifdef MULTIPROCESSOR
863 1.111 jmcneill aprint_debug_dev(dv, "mpidr: %#x\n", armreg_mpidr_read());
864 1.108 matt #endif
865 1.111 jmcneill aprint_debug_dev(dv,
866 1.85 matt "isar: [0]=%#x [1]=%#x [2]=%#x [3]=%#x, [4]=%#x, [5]=%#x\n",
867 1.92 matt cpu_instruction_set_attributes[0],
868 1.92 matt cpu_instruction_set_attributes[1],
869 1.92 matt cpu_instruction_set_attributes[2],
870 1.92 matt cpu_instruction_set_attributes[3],
871 1.92 matt cpu_instruction_set_attributes[4],
872 1.92 matt cpu_instruction_set_attributes[5]);
873 1.111 jmcneill aprint_debug_dev(dv,
874 1.85 matt "mmfr: [0]=%#x [1]=%#x [2]=%#x [3]=%#x\n",
875 1.92 matt cpu_memory_model_features[0], cpu_memory_model_features[1],
876 1.92 matt cpu_memory_model_features[2], cpu_memory_model_features[3]);
877 1.111 jmcneill aprint_debug_dev(dv,
878 1.85 matt "pfr: [0]=%#x [1]=%#x\n",
879 1.92 matt cpu_processor_features[0], cpu_processor_features[1]);
880 1.85 matt }
881